A Path Model to Infer Mathematics Performance: The Interrelated Impact of Motivation, Attitude, Learning Style and Teaching Strategies Variables

Fuente: arXiv
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Main Authors: Pizon, Marvin G., Ytoc, Shiryl T.
Format: Preprint
Published: 2021
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author Pizon, Marvin G.
Ytoc, Shiryl T.
author_facet Pizon, Marvin G.
Ytoc, Shiryl T.
contents The present study aims at exploring predictors influencing mathematics performance. In particular, the research focuses on four subject components such as motivation, attitude towards mathematics, learning style, and teaching strategies. The study respondents have involved a sample of 240 students from Agusan del Sur State College of Agriculture and Technology (ASSCAT). Path analysis will be used to test the direct and indirect relations between the predictors and mathematics performance. Based on the result, the calculation of reproduced correlation through path decompositions and subsequent comparison to the empirical correlation indicated that the path model fits the observed data. Results also revealed that a large proportion of mathematics performance could be predicted from the attitude towards mathematics, learning style, and teaching strategies. Moreover, attitude towards mathematics, learning style, and teaching strategies influence mathematics performance directly and indirectly.
format Preprint
id arxiv_https___arxiv_org_abs_2105_05850
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle A Path Model to Infer Mathematics Performance: The Interrelated Impact of Motivation, Attitude, Learning Style and Teaching Strategies Variables
Pizon, Marvin G.
Ytoc, Shiryl T.
Applications
The present study aims at exploring predictors influencing mathematics performance. In particular, the research focuses on four subject components such as motivation, attitude towards mathematics, learning style, and teaching strategies. The study respondents have involved a sample of 240 students from Agusan del Sur State College of Agriculture and Technology (ASSCAT). Path analysis will be used to test the direct and indirect relations between the predictors and mathematics performance. Based on the result, the calculation of reproduced correlation through path decompositions and subsequent comparison to the empirical correlation indicated that the path model fits the observed data. Results also revealed that a large proportion of mathematics performance could be predicted from the attitude towards mathematics, learning style, and teaching strategies. Moreover, attitude towards mathematics, learning style, and teaching strategies influence mathematics performance directly and indirectly.
title A Path Model to Infer Mathematics Performance: The Interrelated Impact of Motivation, Attitude, Learning Style and Teaching Strategies Variables
topic Applications
url https://arxiv.org/abs/2105.05850